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Bruner, K. R.

Publications and source records attributed to Bruner, K. R..

2 recordsLinked to original sources

12 weeks of voluntary wheel running restores glucagon sensitivity in middle-aged mice

Aerobic exercise training is a potent intervention for the treatment and prevention of age-related metabolic disease, which is characterized by both insulin and glucagon resistance. While insulin resistance is a key driver of metabolic disease in aging, glucagon signaling is equally critical in maintaining both glucose and lipid homeostasis, particularly during exercise. Previous studies have established the glucagon sensitizing effects of exercise training in younger animals. Most studies in rodents employ rigorous and carefully dosed forced exercise protocols. This forced exercise is a stressful paradigm. We implemented a voluntary wheel running (VWR) intervention to assess the effects of aging and exercise training on glucagon sensitivity. We initiated 12-weeks of VWR in young adult (6-month-old) and middle-aged (12-month-old) C57BL/6NCrl male mice. Glucagon sensitivity, as assessed by glucagon stimulated hyperglycemia, was decreased in middle-aged compared to young adult sedentary mice (P=0.046). While VWR did not affect glucose clearance, circulating insulin, glucagon, or insulin sensitivity, regardless of age, VWR improved glucagon responsivity only in middle-aged mice (P=0.031). VWR increased hepatic glycogen content and increased glucagon-stimulated glycogen depletion, regardless of age (P<0.01). Results from these studies suggest that exercise training can enhance liver glucagon action in aging mice without otherwise altering glucose homeostasis. New and NoteworthyFew studies have examined the impact of aging on glucagon sensitivity. Here we show that glucagon sensitivity declines from young adulthood to middle age. Yet, 12 weeks of voluntary wheel running, an exercise intervention without the stress of forced treadmill running or swimming, restores glucagon sensitivity in middle-aged male mice without otherwise altering glucose homeostasis.

physiology↗

Glucagon receptor signaling is indispensable for the healthspan effects of caloric restriction in aging male mice

Obesity and type 2 diabetes mellitus accelerate aging, shortening the duration of healthspan. Conversely, chronic calorie restriction (CR) extends healthspan. Research aimed at understanding the mechanism by which CR slows aging has focused heavily on insulin and downstream signaling cascades. Glucagon, a hormone that counter-regulates insulin, is commonly affected by these same interventions. To investigate the role of glucagon in aging we used dietary manipulation, global and liver-specific glucagon receptor knockout, and pharmacological glucagon receptor activation. We found that globally eliminating glucagon receptor signaling (Gcgr KO) decreases median lifespan by 35% in lean mice. These lifespan shortening effects are more robust in diet-induced obese mice (54%). Extending these findings to metabolic health, we found that glucagon receptor signaling is indispensable to the metabolic response to chronic CR in young and aged mice. While CR decreased liver fat, serum triglyceride, and serum cholesterol in WT mice, these metabolic benefits were absent in Gcgr KO mice. In line with these observations, we found that critical nutrient sensing pathways known to improve aging are dysregulated in mice lacking glucagon receptor signaling at the liver (Gcgrhep-/-). Liver-specific deletion of the glucagon receptor decreases hepatic AMP Kinase activation in aging mice, regardless of diet. Further, CR decreases hepatic mTOR activity in WT mice, but not in Gcgrhep-/- mice. Together, these findings propose that glucagon signaling plays a critical role in both normal aging and the lifespan and healthspan extension driven by caloric restriction.

physiology↗